41

With SQL , Can I insert random datetime values in a column giving a range?

For example, given a range of 2010-04-30 14:53:27 to 2012-04-30 14:53:27

I'm getting confused with the range part. as i will have just done this

INSERT INTO `sometable` VALUES (RND (DATETIME())) 
72

Here is an example that should help:

INSERT INTO `sometable` VALUES(
    FROM_UNIXTIME(
        UNIX_TIMESTAMP('2010-04-30 14:53:27') + FLOOR(0 + (RAND() * 63072000))
    )
)

It uses the date 2010-04-30 14:53:27 as the base, converts that to a Unix timestamp, and adds a random number of seconds from 0 to +2 years to the base date and converts it back to a DATETIME.

It should be pretty close but over longer time periods leap years and other adjustments will throw it off.

  • @karto, For handling leap years, see my solution stackoverflow.com/a/28944156/632951 – Pacerier Mar 9 '15 at 14:15
  • Love it! Another way, if you want a random date, say, somewhere in the last month: select FROM_UNIXTIME(UNIX_TIMESTAMP(now()) - FLOOR(0 + (RAND() * 2592000))) – Rex the Strange Apr 22 '19 at 22:58
  • Perfect just what I needed :) – marcogmonteiro Oct 19 '20 at 15:11
27

This should work nicely:

SET @MIN = '2010-04-30 14:53:27';
SET @MAX = '2012-04-30 14:53:27';
SELECT TIMESTAMPADD(SECOND, FLOOR(RAND() * TIMESTAMPDIFF(SECOND, @MIN, @MAX)), @MIN);

TIMESTAMPDIFF is used to determine the number of seconds in the date range. Multiply this by a random number between 0-1 results in a random number between 0 and the number of seconds in the range. Adding this random number of seconds to the lower bound of the range results in a random date between the data range bounds.

9

This works perfectly even for leap years:

select from_unixtime(
    unix_timestamp('2000-1-1') + floor(
        rand() * (
            unix_timestamp('2010-12-31') - unix_timestamp('2000-1-1') + 1
        )
    )
)

The idea is simple: Just take a random timestamp between the two timestamps, then convert it to a datetime using from_unixtime. This way you can ensure that each option has equal probability.

6

Easiest way out:

INSERT INTO `sometable` VALUES (SELECT timestamp('2010-04-30 14:53:27') - INTERVAL FLOOR( RAND( ) * 366) DAY);
4

Just try :

SELECT TIMESTAMP('2012-04-30 14:53:27')-INTERVAL RAND()*365*2 DAY INTO tbl_name;
1

This worked for me but my issue was a bit different. I had to assign certain values in a column to a random datetime.

    UPDATE Tablename
    SET columnName = addtime(concat_ws(' ','2018-07-25' + interval rand()*2 day 
    ,'00:00:00'),sec_to_time(floor(0 + (rand() * 86401))))
    WHERE columnName = condition;
0

It's an old thread but still.. In my case I needed to generate random date in format like this : 2017-01-01. If anyone will need it I have used @drew010 solution and formatted date with DATE_FORMAT.

Here is my code :

SELECT DATE_FORMAT(FROM_UNIXTIME(UNIX_TIMESTAMP('2015-01-01') + FLOOR(0 + (RAND() * 63072000))), '%Y-%m-%d');
0
SET @MIN = '2019-06-29 00:53:27';
SET @MAX = '2019-06-29 13:53:27';

UPDATE tablename
SET columnname = TIMESTAMPADD(SECOND, FLOOR(RAND() * TIMESTAMPDIFF(SECOND, @MIN, @MAX)), @MIN)
WHERE `columnname` = condition
  • problem was, I have some data for load testing and I want random date in date column in between given range. So every time I use same data & update date column only. – Sapna Bhayal Jun 29 '19 at 5:54

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.